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I've read a few tutorials and examples, but I cannot wrap my head around how the MUL instruction works. I've used ADD and SUB without problems. So apparently this instruction multiplies its operand by the value in a register. What register (eax, ebp, esp, etc.) is multiplied by the first operand? And what register is the result stored in, so I can move it to the stack? Sorry, I'm just learning x86 assembly.

When I try to compile this line...

mul     9

I get, "Error: suffix or operands invalid for 'mul'". Can anyone help me out? Thanks.

    global  main
    main:
    push    ebp
    movl    ebp, esp
    sub     esp, byte +8
    mov     eax, 7
    mul     9
    mov     [esp], eax
    call    _putchar
    xor     eax, eax
    leave
    ret
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4 Answers 4

MUL can't use an immediate value as an argument. You have to load '9' into a register, say,

 movl    $7, %eax
 movl    $9, %ecx
 mull    %ecx

which would multiply eax by ecx and store the 64-bit product in edx:eax.

There's a good comprehensive reference of x86 assembly instructions on the Intel web site, see here

http://www.intel.com/Assets/PDF/manual/253666.pdf

http://www.intel.com/Assets/PDF/manual/253667.pdf

But that is probably far more information that you need now.

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http://siyobik.info/index.php?module=x86&id=210

the destination operand is an implied operand located in register AL, AX or EAX (depending on the size of the operand); the source operand is located in a general-purpose register or a memory location

The result is stored in register AX, register pair DX:AX, or register pair EDX:EAX (depending on the operand size), with the high-order bits of the product contained in register AH, DX, or EDX, respectively. If the high-order bits of the product are 0, the CF and OF flags are cleared; otherwise, the flags are set.

In your source it should be mul instead of mull

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I updated the OP. –  Tanner Babcock Dec 25 '10 at 5:38

I'm not an expert but I think you're problem is that mul will not accept a direct operand in your case the decimal constant 9 so try puting 9 in let's say register bx like this:

mov bx,9

mul bx

To answer your question about mul in general it looks like this:

mul reg/memory

and does that:

dx:ax := ax*reg/mem

So with words it expects a single operand which should either be a register or a memory loaction (storing the value to be multiplied so essentialy a variable) and multiplies it by ax and then depending on how long the register/memory(so the operand you gave) was stores it in either ax or dx:ax or edx:eax

I hope I helped you there pal!

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I'll give you a link to my favorite easy-to-read, but complete, reference for x86: http://www.ousob.com/ng/iapx86/ng1840d.php

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